DataOps & MLOps Engineer

ALLSIDES

Bressanone

In loco

EUR 90.000 - 120.000

Tempo pieno

14 giorni+

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Vantaggi offerti da questo lavoro

Stock options
Lunch voucher
Relocation assistance
Flexible working hours
Family-friendly environment
Amazing office space

Descrizione del lavoro

A leading tech company in Bressanone, Italy is looking for a DataOps & MLOps Engineer to build the infrastructure for data and ML workflows. Responsibilities include designing data storage systems, automating ML pipelines, and supporting distributed training workflows. The ideal candidate will have strong Linux knowledge and experience with data storage systems, ML orchestration, and containerization. This position offers competitive compensation, flexible hours, and opportunities for personal and professional growth.

Competenze

  • Experience with large file handling systems.
  • Familiarity with distributed filesystems and object storage.
  • Experience with CI/CD pipelines.
  • Familiarity with model registries and deployment workflows.

Mansioni

  • Design and manage data storage systems for large datasets.
  • Build data access patterns for distributed training.
  • Implement dataset versioning and lineage tracking.
  • Set up ML pipeline automation and experiment tracking.
  • Support distributed training across multi-GPU clusters.
  • Optimize training pipelines and ensure reproducibility.
  • Profile training pipelines to optimize data loading and GPU memory usage.
  • Ensure reproducibility via environment pinning and artifact management.
  • Manage artifact storage and distribution (Docker registries, model registries).
  • Build tooling to boost developer productivity for ML workflows.

Conoscenze

Strong Linux knowledge
Data storage systems experience
Knowledge of dataset versioning tools
Experience with ML pipeline orchestration
Familiarity with experiment tracking tools
Understanding distributed training frameworks
Experience with containerization
Knowledge of Python dependency management
Python dependency mgmt
Infra knowledge

Strumenti

Airflow
Kubeflow
Docker
MLflow
Weights & Biases
Neptune
Docker

Descrizione del lavoro

About ALLSIDES

ALLSIDES is redefining how the world experiences 3D content. We combine physically accurate scanning and generative AI to power content creation workflows for e-commerce, virtual environments, and immersive experiences. Our clients include global brands like adidas, Meta, Amazon, and Zalando.

We operate a rapidly scaling photorealistic 3D scanning operation, capturing tens of thousands of assets annually while training next‑generation AI models. As an NVIDIA Inception member, we collaborate with leading research institutions and actively participate in top‑tier conferences in 3D computer vision and AI.

More info: https://www.allsides.tech | https://blogs.nvidia.com/blog/covision-adidas-rtx-ai/

Position Overview

We're looking for a DataOps & MLOps Engineer to build the infrastructure that powers our data and ML workflows. You'll focus on data storage and movement, dataset versioning, ML pipeline automation, experiment tracking, and ensuring reproducibility across our 3D reconstruction and training workloads.

Main Responsibilities
  • Design and manage data storage systems for large datasets (multi‑TB image data, 3D assets, training data)
  • Build efficient data access patterns and movement strategies for distributed training and experimentation
  • Implement dataset versioning and lineage tracking for reproducibility
  • Set up and maintain experiment tracking and model registry infrastructure (MLflow, Weights & Biases)
  • Build ML pipelines for data preprocessing, training, validation, and model registration (Kubeflow, Airflow, Prefect)
  • Support distributed training workflows across multi‑GPU clusters (PyTorch Distributed, Horovod, Ray)
  • Profile and optimize training pipelines: data loading bottlenecks, batch sizing, GPU memory utilization
  • Ensure reproducibility of experiments: environment pinning, data versioning, artifact management
  • Manage artifact storage and distribution (Docker registries, model registries, package repositories)
  • Build tooling to improve developer productivity for ML workflows
Qualifications
  • Strong Linux knowledge
  • Experience with data storage systems and large file handling (object storage, NFS, distributed filesystems)
  • Knowledge of dataset versioning tools (DVC, Delta Lake, or similar)
  • Experience with ML pipeline orchestration (Airflow, Prefect, Kubeflow)
  • Familiarity with experiment tracking tools (MLflow, Weights & Biases, Neptune)
  • Understanding of distributed training frameworks and patterns
  • Experience with containerization (Docker) and CI/CD pipelines
  • Knowledge of Python dependency and environment management
Nice to Have
  • Experience with model registries and deployment workflows
  • Familiarity with data quality validation frameworks
  • Knowledge of 3D graphics processing or computer vision workflows
What we offer
  • Compensation that reflects your experience including stock‑options
  • Lunch voucher for working days
  • We assist with relocation
  • Flexible working hours and work‑from‑home policy
  • Family‑friendly environment
  • Amazing office space in South Tyrol, located at the Durst Group
  • Personal and professional growth opportunities

You don't have to tick every box to apply, your drive and passion matter most!

This role is located on‑site in Brixen/Bressanone, Italy. If you are interested, please apply with your CV attached to careers@allsides.tech

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